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bioRxiv · 10.64898/2026.08.03.742530

Mitochondrial phosphate carrier-dependence of mitochondrial calcium chelation and respiration in skeletal muscle

Abstract

The past decade has seen remarkable progress in the molecular resolution of the influx and efflux components of mitochondrial Ca2+ handling, but little progress in matrix Ca2+ chelation that is central to mitochondrial calcium signaling. Among possible chelators, inorganic phosphate (Pi) is dynamic, and its uptake can lessen during Ca2+ uptake the rundown of the membrane potential, the primary driving force for Ca2+ uptake. Thus, PiC, the major mitochondrial Pi transporter, is well-positioned to regulate mitochondrial Ca2+ handling. To test this, we depleted (KD) PiC in murine skeletal muscle. We show that PiC depletion enhances the matrix free Ca2+ rise across a range of Ca2+ uptake activities, and surprisingly, causes elevated mitochondrial Ca2+ uptake, which seems to arise from an increased abundance of the mitochondrial Ca2+ uniporter. With protein levels of non-mitochondrial Ca2+ handling proteins unaltered, the greater mitochondrial Ca2+ uptake may drive a suppressed cytoplasmic Ca2+ response to tetanic stimulation, via lesser Ca2+-mediated positive feedback on Ca2+ release channels, contributing to an exercise deficit in KD mice. Alternatively, less buffering of matrix Ca2+ might be beneficial. We test these possibilities by lowering MCU, the uniporters pore forming subunit, in skeletal muscle of adult PiC KD mice, and find a worsened exercise deficit. This study establishes the requirement for PiC to maintain a bound fraction of Ca2+ in the matrix, and reveals a fitness benefit for elevated [Ca2+]m in striated muscle depleted of PiC.

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BibTeXRIS

Vasquez-Trincado, C., Debattisti, V., Ghosh, A., Collins, A. H., Han, J. I., Bekeova, C., Loro, E., Khurana, T., Hajnoczky, G., Seifert, E. L.. 2026-08-04. Mitochondrial phosphate carrier-dependence of mitochondrial calcium chelation and respiration in skeletal muscle. https://doi.org/10.64898/2026.08.03.742530

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